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Effective Heart Disease Detection Based on Quantitative Computerized Traditional Chinese Medicine Using Representation Based Classifiers

机译:基于表征的分类器基于定量计算机中药的有效心脏病检测

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摘要

At present, heart disease is the number one cause of death worldwide. Traditionally, heart disease is commonly detected using blood tests, electrocardiogram, cardiac computerized tomography scan, cardiac magnetic resonance imaging, and so on. However, these traditional diagnostic methods are time consuming and/or invasive. In this paper, we propose an effective noninvasive computerized method based on facial images to quantitatively detect heart disease. Specifically, facial key block color features are extracted from facial images and analyzed using the Probabilistic Collaborative Representation Based Classifier. The idea of facial key block color analysis is founded in Traditional Chinese Medicine. A new dataset consisting of 581 heart disease and 581 healthy samples was experimented by the proposed method. In order to optimize the Probabilistic Collaborative Representation Based Classifier, an analysis of its parameters was performed. According to the experimental results, the proposed method obtains the highest accuracy compared with other classifiers and is proven to be effective at heart disease detection.
机译:当前,心脏病是全世界第一大死亡原因。传统上,通常使用血液检查,心电图,心脏计算机断层扫描,心脏磁共振成像等来检测心脏病。然而,这些传统的诊断方法是耗时的和/或侵入性的。在本文中,我们提出了一种有效的基于面部图像的无创计算机化方法来定量检测心脏病。具体而言,使用基于概率协作表示的分类器从面部图像中提取面部关键块颜色特征并进行分析。面部关键块颜色分析的想法是在中医学中创立的。通过该方法对由581种心脏病和581种健康样品组成的新数据集进行了实验。为了优化基于概率协同表示的分类器,对其参数进行了分析。根据实验结果,与其他分类器相比,该方法获得了最高的准确性,并被证明对心脏病的检测是有效的。

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